Positively Charged Mini-Protein Zbasic2 As a Highly Efficient Silica Binding Module: Opportunities for Enzyme Immobilization on Unmodified Silica Supports

被引:72
作者
Bolivar, Juan M. [1 ]
Nidetzky, Bernd [1 ]
机构
[1] Graz Univ Technol, Inst Biotechnol & Biochem Engn, A-8010 Graz, Austria
关键词
STRONG ADSORPTION SITES; SI-TAG; SURFACE CONTROVERSIES; PURIFICATION; STRATEGIES; BLOCKAGE; OXIDASE; DOMAIN; COMMON; GLASS;
D O I
10.1021/la3012348
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Silica is a highly attractive support material for protein immobilization in a wide range of biotechnological and biomedical-analytical applications. Without suitable derivatization, however, the silica surface is not generally usable for attachment of proteins. We show here that Z(basic2) (a three alpha-helix bundle mini-protein of 7 kDa size that exposes clustered positive charges from multiple arginine residues on one side) functions as highly efficient silica binding module (SBM), allowing chimeras of target protein with SBM to become very tightly attached to underivatized glass at physiological pH conditions. We used two enzymes, D-amino acid oxidase and sucrose phosphorylase, to demonstrate direct immobilization of Z(basic2) protein from complex biological samples with extremely high selectivity. Immobilized enzymes displayed full biological activity, suggesting that their binding to the glass surface had occurred in a preferred orientation via the SBM. We also show that charge complementarity was the main principle of affinity between SBM and glass surface, and Z(basic2) proteins were bound in a very strong, yet fully reversible manner, presumably through multipoint noncovalent interactions. Z(basic2) proteins were immobilized on porous glass in a loading of 30 mg protein/g support or higher, showing that attachment via the SBM combines excellent binding selectivity with a technically useful binding capacity. Therefore, Z(basic2) and silica constitute a fully orthogonal pair of binding module and insoluble support for oriented protein immobilization, and this opens up new opportunities for the application of silica-based materials in the development of supported heterogeneous biocatalysts.
引用
收藏
页码:10040 / 10049
页数:10
相关论文
共 50 条
[1]  
[Anonymous], 1979, CHEM SILICA SOLUBILI
[2]   Application of Hierarchical Porous Silica with a Stable Large Porosity for ß-Galactosidase Immobilization [J].
Bernal, Claudia ;
Sierra, Ligia ;
Mesa, Monica .
CHEMCATCHEM, 2011, 3 (12) :1948-1954
[3]   SURFACE SILANOLS IN SILICA-BONDED HYDROCARBONACEOUS STATIONARY PHASES .2. IRREGULAR RETENTION BEHAVIOR AND EFFECT OF SILANOL MASKING [J].
BIJ, KE ;
HORVATH, C ;
MELANDER, WR ;
NAHUM, A .
JOURNAL OF CHROMATOGRAPHY, 1981, 203 (JAN) :65-84
[4]   PROTEIN-PURIFICATION - ADSORPTION CHROMATOGRAPHY ON CONTROLLED PORE GLASS WITH USE OF CHAOTROPIC BUFFERS [J].
BOCK, HG ;
SKENE, P ;
FLEISCHER, S ;
CASSIDY, P ;
HARSHMAN, S .
SCIENCE, 1976, 191 (4225) :380-383
[5]   Oriented and selective enzyme immobilization on functionalized silica carrier using the cationic binding module Zbasic2: Design of a heterogeneous D-amino acid oxidase catalyst on porous glass [J].
Bolivar, Juan M. ;
Nidetzky, Bernd .
BIOTECHNOLOGY AND BIOENGINEERING, 2012, 109 (06) :1490-1498
[6]   Functionalized glass substrate for microarray analysis [J].
DeRosa, Rebecca L. ;
Cardinale, Jean A. ;
Cooper, Ashleigh .
THIN SOLID FILMS, 2007, 515 (7-8) :4024-4031
[7]   Immobilization of alkaline phosphatase on modified silica coatings [J].
Ehlert, Nina ;
Mueller, Peter Paul ;
Stieve, Martin ;
Behrens, Peter .
MICROPOROUS AND MESOPOROUS MATERIALS, 2010, 131 (1-3) :51-57
[8]   Polyarginine as a multifunctional fusion tag [J].
Fuchs, SM ;
Raines, RT .
PROTEIN SCIENCE, 2005, 14 (06) :1538-1544
[9]   Potential of Different Enzyme Immobilization Strategies to Improve Enzyme Performance [J].
Garcia-Galan, Cristina ;
Berenguer-Murcia, Angel ;
Fernandez-Lafuente, Roberto ;
Rodrigues, Rafael C. .
ADVANCED SYNTHESIS & CATALYSIS, 2011, 353 (16) :2885-2904
[10]   Preparative protein purification on underivatized silica [J].
Ghose, S ;
McNerney, TM ;
Hubbard, B .
BIOTECHNOLOGY AND BIOENGINEERING, 2004, 87 (03) :413-423